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Deformation prediction model of concrete face rockfill dams based on an improved random forest model 被引量:9
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作者 Yan-long Li Qiao-gang Yin +1 位作者 Ye Zhang Heng Zhou 《Water Science and Engineering》 EI CAS CSCD 2023年第4期390-398,共9页
The unique structure and complex deformation characteristics of concrete face rockfill dams(CFRDs)create safety monitoring challenges.This study developed an improved random forest(IRF)model for dam health monitoring ... The unique structure and complex deformation characteristics of concrete face rockfill dams(CFRDs)create safety monitoring challenges.This study developed an improved random forest(IRF)model for dam health monitoring modeling by replacing the decision tree in the random forest(RF)model with a novel M5'model tree algorithm.The factors affecting dam deformation were preliminarily selected using the statistical model,and the grey relational degree theory was utilized to reduce the dimensions of model input variables.Finally,a deformation prediction model of CFRDs was established using the IRF model.The ten-fold cross-validation method was used to quantitatively analyze the parameters affecting the IRF algorithm.The performance of the established model was verified using data from three specific measurement points on the Jishixia dam and compared with other dam deformation prediction models.At point ES-10,the performance evaluation indices of the IRF model were superior to those of the M5'model tree and RF models and the classical support vector regression(SVR)and back propagation(BP)neural network models,indicating the satisfactory performance of the IRF model.The IRF model also outperformed the SVR and BP models in settlement prediction at points ES2-8 and ES4-10,demonstrating its strong anti-interference and generalization capabilities.This study has developed a novel method for forecasting and analyzing dam settlements with practical significance.Moreover,the established IRF model can also provide guidance for modeling health monitoring of other structures. 展开更多
关键词 Dam health monitoring M5'model tree IRF Monitoring models Settlement prediction
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“模型柱”法设计细长柱 被引量:2
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作者 乔伟 陆道渊 《建筑结构》 CSCD 北大核心 2009年第S1期476-479,共4页
我国现行《混凝土结构设计规范》采用η-l_n方法设计偏心受压构件,该方法对长细比大于30的细长柱误差较大。为解决此问题,本文在"模型柱"理论研究基础上,提出偏压细长柱设计方法,并进行了模型试验验证。该设计方法应用于实际... 我国现行《混凝土结构设计规范》采用η-l_n方法设计偏心受压构件,该方法对长细比大于30的细长柱误差较大。为解决此问题,本文在"模型柱"理论研究基础上,提出偏压细长柱设计方法,并进行了模型试验验证。该设计方法应用于实际工程中,取得了良好的效果。 展开更多
关键词 细长柱 η-l0方法 “模型柱”法 强度破坏 失稳破坏
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